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US20030067856A1 - Information recording method and information recording apparatus - Google Patents

Information recording method and information recording apparatus Download PDF

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US20030067856A1
US20030067856A1 US10/268,570 US26857002A US2003067856A1 US 20030067856 A1 US20030067856 A1 US 20030067856A1 US 26857002 A US26857002 A US 26857002A US 2003067856 A1 US2003067856 A1 US 2003067856A1
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recording
length
information
pulse
power
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US7130256B2 (en
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Tsuyoshi Toda
Takakiyo Yasukawa
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Hitachi Consumer Electronics Co Ltd
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Hitachi Ltd
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    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B7/00Recording or reproducing by optical means, e.g. recording using a thermal beam of optical radiation by modifying optical properties or the physical structure, reproducing using an optical beam at lower power by sensing optical properties; Record carriers therefor
    • G11B7/004Recording, reproducing or erasing methods; Read, write or erase circuits therefor
    • G11B7/006Overwriting
    • G11B7/0062Overwriting strategies, e.g. recording pulse sequences with erasing level used for phase-change media
    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B7/00Recording or reproducing by optical means, e.g. recording using a thermal beam of optical radiation by modifying optical properties or the physical structure, reproducing using an optical beam at lower power by sensing optical properties; Record carriers therefor
    • G11B7/004Recording, reproducing or erasing methods; Read, write or erase circuits therefor
    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B7/00Recording or reproducing by optical means, e.g. recording using a thermal beam of optical radiation by modifying optical properties or the physical structure, reproducing using an optical beam at lower power by sensing optical properties; Record carriers therefor
    • G11B7/004Recording, reproducing or erasing methods; Read, write or erase circuits therefor
    • G11B7/0045Recording
    • G11B7/00456Recording strategies, e.g. pulse sequences
    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B20/00Signal processing not specific to the method of recording or reproducing; Circuits therefor
    • G11B20/10Digital recording or reproducing
    • G11B20/14Digital recording or reproducing using self-clocking codes
    • G11B20/1403Digital recording or reproducing using self-clocking codes characterised by the use of two levels
    • G11B20/1423Code representation depending on subsequent bits, e.g. delay modulation, double density code, Miller code
    • G11B20/1426Code representation depending on subsequent bits, e.g. delay modulation, double density code, Miller code conversion to or from block codes or representations thereof
    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B20/00Signal processing not specific to the method of recording or reproducing; Circuits therefor
    • G11B20/10Digital recording or reproducing
    • G11B20/12Formatting, e.g. arrangement of data block or words on the record carriers
    • G11B2020/1264Formatting, e.g. arrangement of data block or words on the record carriers wherein the formatting concerns a specific kind of data
    • G11B2020/1288Formatting by padding empty spaces with dummy data, e.g. writing zeroes or random data when de-icing optical discs
    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B2220/00Record carriers by type
    • G11B2220/20Disc-shaped record carriers
    • G11B2220/25Disc-shaped record carriers characterised in that the disc is based on a specific recording technology
    • G11B2220/2537Optical discs
    • G11B2220/2541Blu-ray discs; Blue laser DVR discs

Definitions

  • the present invention relates to an information recording and reproducing apparatus for recording and reproducing information on an information recording medium, and more specifically to an information recording method for recording information by a mark-length recording system with the use of laser light, and an information recording apparatus for such an information recording method.
  • a technology of recording and reproducing information on/from the information recording medium using laser light has already achieved a practical use of an optical disk apparatus etc.
  • a phase change type optical disk that utilizes a reversible phase change between crystalline and amorphous states.
  • this recording method adopts a recording method where, in the first part and in the last part, light of the above-mentioned recording power is irradiated for a constant period of time; in the intermediate part, light of the recording power and light of a power smaller than the recording power (erasing power) are switched alternately and irradiated so that the cycle thus created becomes smaller than the above-mentioned constant period of time; and after the light of the recording power irradiated in the last part, light of a power (reproducing power) lower than the erasing power is irradiated for a constant period of time to decrease the thermal interference.
  • the size of a record mark is smaller than that of the present optical disk (for example, DVD-RAM Version 1.0/2.0).
  • the mark whose recording code length is of the order of 0.15 to 0.20 ⁇ m is intended to be recorded by a recording method for recording the mark whose recording code length is of the order of 0.42 to 0.615 ⁇ m (DVD-RAM Version 1.0/2.0)
  • recordable optical disk e.g., DVD-R
  • DVD-RAM and DVD-RW rewritable optical disks
  • the recording method is a method for recording data on an optical disk by irradiating laser light on the optical disk and forming a mark whose length is an integral multiple of the reference clock length, characterized in that, as irradiation powers, the above-mentioned laser can irradiate the optical disk at any one of four laser powers that satisfy a relation:
  • the recording method is a method for recording the data on an optical disk by irradiating laser light on the optical disk and forming a mark whose length is an integral multiple of the reference clock length, characterized in that, as irradiation powers, the above-mentioned laser can irradiate the optical disk at any one of four laser powers that satisfy a relation:
  • the length of a first pulse of the first power at the time of forming the mark is made to be shorter than twice the length of a pulse of the fourth power that follows the first light of the first power.
  • the recording method is a method for recording the data on an optical disk by irradiating laser on the optical disk and forming a mark whose length is an integral multiple of the reference clock length, characterized in that, as irradiation powers, the above-mentioned laser can irradiate the optical disk at any one of four laser powers that satisfy a relation:
  • the length of a first pulse of the fourth power at the time of forming the mark is made to be longer than the length of a pulse of the fourth power that follows the first pulse of the fourth power.
  • FIG. 1 is a block diagram of an information recording apparatus in one embodiment according to the present invention.
  • FIG. 2 is a waveform chart for explaining the recording method in the one embodiment according to the present invention.
  • FIG. 3 is a recording waveform chart in the one embodiment according to the present invention.
  • FIG. 1 shows the block diagram of the one embodiment of the information recording apparatus that implements the recording method according to the present invention.
  • the numeral 1 is a laser
  • the numeral 2 is an APC (Auto Power Control) circuit
  • the numeral 3 is a high-frequency superimposing circuit
  • the numeral 4 is a current source for reproducing
  • the numeral 5 is a first recording current source
  • the numeral 6 is a second recording current source
  • the numeral 7 is a third recording current source
  • the numeral 8 is a fourth recording current source
  • the numeral 9 is a first switch
  • the numeral 10 is a second switch
  • the numeral 11 is a third switch
  • the numeral 12 is a fourth switch
  • the numeral 14 is a counter
  • the numeral 15 is a memory
  • the numeral 13 is a recording pulse generating circuit composed of the counter 14 and the memory 15
  • the numeral 16 is a reference clock
  • the numeral 17 is a sequence of recording codes
  • the numeral 18 is
  • the laser 1 is oscillated at a reproducing power level Pr by the APC circuit 2 .
  • the high-frequency superimposing circuit 3 is provided to reduce laser noise arising from the laser 1 , but the high-frequency superimposition maybe stopped at the time of recording/erasing from the viewpoint of a laser life.
  • the switches 9 - 12 for controlling the currents from the recording current sources 5 - 8 are controlled by four kinds of recording pulses 18 - 21 , which enables the laser 1 to emit the laser power necessary for recording the information.
  • the memory 15 stores combinations of recording pulses (hereinafter referred to as the recording pulse trains) used to form nine kinds of marks of 3 T (channel bits) to 11 T, which are necessary in the mark-length recording system, and outputs a recording pulse train in response to an input from the counter 14 .
  • the reference clock 16 and the sequence of recording codes 17 that is information to be recorded are inputted into the counter 14 , where the sequence of recording codes 17 is decomposed into marks (recorded portions) and spaces (erased portions) to be recorded in synchronization with the reference clock 16 , the recording code length is counted, and consequently the memory 15 outputs a recording pulse train that corresponds to the recording code length.
  • FIG. 2(A) and FIG. 2(B) show the reference clock 16 and the sequence of recording codes 17 , respectively, which are inputted into the counter 14 .
  • the counter 14 decomposes the sequence of recording codes 17 into the recorded (mark) portions (H level) and erased (space) portions (L level) at positions of the rise or fall of the reference clock 16 , and counts the recording code length; and then, the memory 15 outputs a recording pulse train corresponding to the recording code length.
  • FIG. 2(C) shows the recording pulse outputted from the memory 15
  • FIG. 2(D) shows a laser power emitted from the laser 1 to the optical disk.
  • the first recording pulse 18 has a power level of Pw (recording power level)
  • the second record pulse 19 has a power level of Pe (erasing power level)
  • the third recording pulse 20 has a power level of Pb
  • the fourth recording pulse 21 has a power level of Pc.
  • the high-frequency superimposing circuit 3 is stopped, a power level Pr′ that is maintained by the APC circuit 2 is used as a base power, on which the power levels (Pw, Pe, Pc, Pb) are superimposed.
  • Pr′ is a power level when the high-frequency superimposition circuit is stopped, and this power level is lower than the reproducing power level Pr.
  • the power level of Pe is superimposed on the power level of Pr′ and is irradiated on the optical disk.
  • the light at the power level of Pw heats up the recording medium, and the light at the power level of Pc suppresses the thermal interference and also controls shapes of front and rear ends of the mark that is being formed on the recording medium.
  • the light at the power levels of Pw, Pb, and Pc controls the shapes of front and rear ends of the mark that is being formed on the recording medium. That is, at the time of recording 3 T and 6 T marks, the laser light is irradiated on the recording medium at the laser powers shown in FIG. 2(D).
  • the details of the control signal and the recording waveform length at the time of the recording of the optical disk on which the information is recorded with a recording code length shorter than that of the current optical disk will be described referring to FIG. 3.
  • the 8/16 modulation is one whereby information is recorded using marks and spaces of 3 T to 11 T.
  • the laser powers corresponding to the recording codes of 3 T to 5 T are made to vary intricately as shown in the figure, the laser powers for the recording codes of 6 T to 11 T are such that a pulse train (T MP , T MC ) synchronized with the reference clock 16 is added to the recording code 5 T by the difference number of cycles between the recording code 5 T and a recording code in question.
  • the laser is driven alternately at two power levels of Pw and Pb.
  • the effective recording pulse length for the recording code 5 T is 2.315T, which is a similar recording waveform as the recording code 4 T. Also in this case, as with the recording code 4 T, the effective recording pulse length needs to be shortened from the recording code length by 2.685T as a control in the time-axis direction. Further, a ratio of the first pulse length to the first cooling pulse length (T FP /T FC ) is approximately 1.25.
  • the ratio of the first pulse length to the first cooling pulse length (T FP /T FC ) is approximately 1.25 as with the case of the recording code 5 T.
  • the ratio of the first cooling pulse length to the intermediate cooling pulse length (T FC /T MC ) is 1.2.
  • this embodiment adopts a configuration in which recording pulse trains corresponding to the nine kinds of recording code lengths of 3 T to 11 T are stored
  • the embodiment may adopt a configuration in which a recording pulse train corresponding to a recording code length of 2 T is stored additionally according to the recording medium and the recording apparatus.
  • the differences between the recording code lengths and the effective recording pulse lengths are set to 2.315T to 2.685T, but even if this difference is set to 2 T or so, a similar effect can be obtained.
  • the ratio of the first pulse length to the first cooling pulse length (T FP /T FC ) is set to approximately 1.25, but even if this ratio is set to 2 or so, a similar effect can be obtained.
  • the present invention in the mark-length recording system where a mark smaller than a light spot size that is defined by ⁇ /NA is used as a shortest mark, there can be offered the effect that the length and width of the record mark are controlled in a highly accurate manner regardless of variation in lengths of the record marks and spaces, which enables the information to be recorded densely, and the effect that the reliability of the information is improved.

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  • Optical Recording Or Reproduction (AREA)
  • Optical Head (AREA)

Abstract

The mark-length recording system whereby information is recorded by changing the lengths of a recorded portion and an unrecorded or erased portion has a problem that, when new information is recorded in an already recorded region, the newly recorded information may deteriorate in reliability because the length and width of the newly recorded mark are different from those of the previously recorded mark and a part may exist that is not completely erased at the time of overwriting. The invention widens a setting freedom of the recording power and controls the length and width of the recorded mark by making the effective recording pulse length (the length from a rise of a first pulse to a fall of a last pulse) satisfy a relation: (effective recording pulse length)<(recording code length, i.e., the length of data to be recorded)−2T(twice the reference clock cycle).

Description

    FIELD OF THE INVENTION
  • The present invention relates to an information recording and reproducing apparatus for recording and reproducing information on an information recording medium, and more specifically to an information recording method for recording information by a mark-length recording system with the use of laser light, and an information recording apparatus for such an information recording method. [0001]
  • BACKGROUND OF THE INVENTION
  • A technology of recording and reproducing information on/from the information recording medium using laser light has already achieved a practical use of an optical disk apparatus etc. As one method for a rewritable optical disk apparatus, there is a phase change type optical disk that utilizes a reversible phase change between crystalline and amorphous states. In order to obtain these two states, light of a high power (recording power) is irradiated on the recording medium, which is heated over a melting point and then is quenched quickly to convert to the amorphous state; light of an intermediate power (erasing power) lying between the above-mentioned high power and a reproducing power is irradiated on the recording medium, which is heated up to the crystallizing temperature and is cooled gradually to convert to a crystalline state. Therefore, overwriting can be performed with light of a single laser. [0002]
  • Conventionally, in the recording method based on the above-mentioned light irradiating method, as described in U.S. Pat. Nos. 5,490,126, 5,636,194, and the DVD-RAM JIS Standard (120 mm DVD Rewritable Disk JIS X 6243/P86, Attachment H, Definition of Writing Pulse), at least three power levels consisting of the recording power (high power level) for overwriting, the erasing power (medium power level), and the reproducing power for reducing thermal interference (low power level) are used; and the recording mark is classified into three kinds, namely a first part, an intermediate part, and a last part, and, an information is recorded by a recording pulse whose effective length (length from a rise of the first pulse to a fall of the last pulse) corresponds to the length of data to be recorded (recording code length). Further, this recording method adopts a recording method where, in the first part and in the last part, light of the above-mentioned recording power is irradiated for a constant period of time; in the intermediate part, light of the recording power and light of a power smaller than the recording power (erasing power) are switched alternately and irradiated so that the cycle thus created becomes smaller than the above-mentioned constant period of time; and after the light of the recording power irradiated in the last part, light of a power (reproducing power) lower than the erasing power is irradiated for a constant period of time to decrease the thermal interference. [0003]
  • SUMMARY OF THE INVENTION
  • In order to increase storage capacity in the next-generation optical disk, it is preferable that the size of a record mark is smaller than that of the present optical disk (for example, DVD-RAM Version 1.0/2.0). However, if the mark whose recording code length is of the order of 0.15 to 0.20 μm is intended to be recorded by a recording method for recording the mark whose recording code length is of the order of 0.42 to 0.615 μm (DVD-RAM Version 1.0/2.0), a mark of a length of the order of 0.21 to 0.28 μm is formed even using an apparatus that features a laser wavelength=0.405 μm and an NA=0.85. That is, there was a problem that a mark about 1.4-times larger than the targeted recording code length is formed. Further, even when the recording is performed using the above-mentioned recording method with reduced laser output, it is difficult to avoid the problem that a mark whose length is 1.4-times larger than the recording code length of the targeted mark is formed. Moreover, if the recording is performed with a laser output that can make the mark agree with the recording code length, there is a problem that a sufficient mark width cannot be obtained, which causes decrease in the signal amplitude at the time of reproducing and hence reduce in the signal-to-noise ratio, and consequently the reliability of the information is impaired and the like. [0004]
  • It is the object of the present invention to provide an information recording method whereby a recording operation of recordable optical disk (e.g., DVD-R) or rewritable optical disks (i.e., DVD-RAM and DVD-RW), in both of which the information is recorded with a recording code length shorter than that of the current optical disk, is controlled appropriately and also an information recording apparatus for such an information recording method. [0005]
  • In order to attain the above-mentioned object, the recording method according to one aspect of the present invention is a method for recording data on an optical disk by irradiating laser light on the optical disk and forming a mark whose length is an integral multiple of the reference clock length, characterized in that, as irradiation powers, the above-mentioned laser can irradiate the optical disk at any one of four laser powers that satisfy a relation:[0006]
  • first power>second power>third power>fourth power,
  • and a sum of the lengths of a pulse of the above-mentioned first power and of a pulse of the above-mentioned fourth power at the time of forming the mark is made to be shorter than the length of the mark minus twice the reference clock length. [0007]
  • Further, the recording method according to another aspect of the present invention is a method for recording the data on an optical disk by irradiating laser light on the optical disk and forming a mark whose length is an integral multiple of the reference clock length, characterized in that, as irradiation powers, the above-mentioned laser can irradiate the optical disk at any one of four laser powers that satisfy a relation:[0008]
  • first power>second power>third power>fourth power,
  • and the length of a first pulse of the first power at the time of forming the mark is made to be shorter than twice the length of a pulse of the fourth power that follows the first light of the first power. [0009]
  • Moreover, the recording method according to still another aspect of the present invention is a method for recording the data on an optical disk by irradiating laser on the optical disk and forming a mark whose length is an integral multiple of the reference clock length, characterized in that, as irradiation powers, the above-mentioned laser can irradiate the optical disk at any one of four laser powers that satisfy a relation:[0010]
  • first power>second power>third power>fourth power,
  • and the length of a first pulse of the fourth power at the time of forming the mark is made to be longer than the length of a pulse of the fourth power that follows the first pulse of the fourth power.[0011]
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a block diagram of an information recording apparatus in one embodiment according to the present invention. [0012]
  • FIG. 2 is a waveform chart for explaining the recording method in the one embodiment according to the present invention. [0013]
  • FIG. 3 is a recording waveform chart in the one embodiment according to the present invention.[0014]
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • FIG. 1 shows the block diagram of the one embodiment of the information recording apparatus that implements the recording method according to the present invention. In the block diagram, the [0015] numeral 1 is a laser, the numeral 2 is an APC (Auto Power Control) circuit, the numeral 3 is a high-frequency superimposing circuit, the numeral 4 is a current source for reproducing, the numeral 5 is a first recording current source, the numeral 6 is a second recording current source, the numeral 7 is a third recording current source, the numeral 8 is a fourth recording current source, the numeral 9 is a first switch, the numeral 10 is a second switch, the numeral 11 is a third switch, the numeral 12 is a fourth switch, the numeral 14 is a counter, the numeral 15 is a memory, the numeral 13 is a recording pulse generating circuit composed of the counter 14 and the memory 15, the numeral 16 is a reference clock, the numeral 17 is a sequence of recording codes, the numeral 18 is a first recording pulse, the numeral 19 is a second recording pulse, the numeral 20 is a third recording pulse, and the numeral 21 is a fourth record pulse.
  • At the time of reproducing, the [0016] laser 1 is oscillated at a reproducing power level Pr by the APC circuit 2. The high-frequency superimposing circuit 3 is provided to reduce laser noise arising from the laser 1, but the high-frequency superimposition maybe stopped at the time of recording/erasing from the viewpoint of a laser life. At the time of recording, the switches 9-12 for controlling the currents from the recording current sources 5-8 are controlled by four kinds of recording pulses 18-21, which enables the laser 1 to emit the laser power necessary for recording the information. The memory 15 stores combinations of recording pulses (hereinafter referred to as the recording pulse trains) used to form nine kinds of marks of 3T (channel bits) to 11T, which are necessary in the mark-length recording system, and outputs a recording pulse train in response to an input from the counter 14. The reference clock 16 and the sequence of recording codes 17 that is information to be recorded are inputted into the counter 14, where the sequence of recording codes 17 is decomposed into marks (recorded portions) and spaces (erased portions) to be recorded in synchronization with the reference clock 16, the recording code length is counted, and consequently the memory 15 outputs a recording pulse train that corresponds to the recording code length.
  • An outline of the combination of the control signal and the recording waveform length at the time of recording [0017] 3T and 6T marks on the optical disk, where the information is recorded with a recording code length shorter than that of the current optical disk, will be described referring to FIG. 2. FIG. 2(A) and FIG. 2(B) show the reference clock 16 and the sequence of recording codes 17, respectively, which are inputted into the counter 14. The counter 14 decomposes the sequence of recording codes 17 into the recorded (mark) portions (H level) and erased (space) portions (L level) at positions of the rise or fall of the reference clock 16, and counts the recording code length; and then, the memory 15 outputs a recording pulse train corresponding to the recording code length. FIG. 2(C) shows the recording pulse outputted from the memory 15, and FIG. 2(D) shows a laser power emitted from the laser 1 to the optical disk.
  • Here, the [0018] first recording pulse 18 has a power level of Pw (recording power level), the second record pulse 19 has a power level of Pe (erasing power level), the third recording pulse 20 has a power level of Pb, and the fourth recording pulse 21 has a power level of Pc. At the time of recording 3T and 6T marks, the high-frequency superimposing circuit 3 is stopped, a power level Pr′ that is maintained by the APC circuit 2 is used as a base power, on which the power levels (Pw, Pe, Pc, Pb) are superimposed. Here Pr′ is a power level when the high-frequency superimposition circuit is stopped, and this power level is lower than the reproducing power level Pr. Further, for the space portions, the power level of Pe is superimposed on the power level of Pr′ and is irradiated on the optical disk.
  • In the intermediate part of a portion where the [0019] 3T mark is to be formed (when the second recording pulse is off), the light at the power level of Pw heats up the recording medium, and the light at the power level of Pc suppresses the thermal interference and also controls shapes of front and rear ends of the mark that is being formed on the recording medium. Further, in the intermediate part of a portion where the 6T mark is to be formed, the light at the power levels of Pw, Pb, and Pc controls the shapes of front and rear ends of the mark that is being formed on the recording medium. That is, at the time of recording 3T and 6T marks, the laser light is irradiated on the recording medium at the laser powers shown in FIG. 2(D).
  • The details of the control signal and the recording waveform length at the time of the recording of the optical disk on which the information is recorded with a recording code length shorter than that of the current optical disk will be described referring to FIG. 3. The 8/16 modulation is one whereby information is recorded using marks and spaces of [0020] 3T to 11T. Although the laser powers corresponding to the recording codes of 3T to 5T are made to vary intricately as shown in the figure, the laser powers for the recording codes of 6T to 11T are such that a pulse train (TMP, TMC) synchronized with the reference clock 16 is added to the recording code 5T by the difference number of cycles between the recording code 5T and a recording code in question. Here, the laser is driven alternately at two power levels of Pw and Pb. The reason why similar waveforms are used for 6T and thereafter is that the size (the length) of the mark that is formed depends on outflow of the heat in the recording medium, the size of the irradiated light spot, and the length of the mark to be formed. Hereafter, the effective recording pulse length for each recording code etc. will be described concretely referring to FIG. 3(C).
  • First, in order to form the [0021] recording code 3T, the light is irradiated at the recording power Pw for a first pulse length TFP=0.563T. The effective recording pulse length consists of the first pulse length TFP, and needs to be shortened from the recording code length by the amount: (recording code length 3T)−TFP=2.437 T as a control in the time-axis direction.
  • For the [0022] recording code 4T, the effective recording pulse length becomes 1.688T that is a sum of the lengths of three kinds of pulses: a first pulse length TFP=0.625T, a first cooling pulse length TFC=0.5T, and a last pulse length TLP=0.563 T, and it needs to be shortened from the recording code length by the amount: (recording code length 4T)−(effective recording pulse length)=2.312T as a control in the time-axis direction. Further, the ratio of the first pulse length to the first cooling pulse length (TFP/TFC) is 1.25.
  • The effective recording pulse length for the [0023] recording code 5T is 2.315T, which is a similar recording waveform as the recording code 4T. Also in this case, as with the recording code 4T, the effective recording pulse length needs to be shortened from the recording code length by 2.685T as a control in the time-axis direction. Further, a ratio of the first pulse length to the first cooling pulse length (TFP/TFC) is approximately 1.25.
  • For the [0024] recording code 6T, the effective recording pulse length becomes 3.315T that is a sum of the lengths of five kinds of pulses: a first pulse length TFP=0.94T, a first cooling pulse length TFC=0.75T, an intermediate pulse length TMP=0.375T, an intermediate cooling pulse length TMC=0.625T, and a last pulse length TLP=0.625T, and it needs to be shortened from the recording code length by the amount: (recording code length 6T)−(effective recording pulse length)=2.685T as a control in the time-axis direction. Further, the ratio of the first pulse length to the first cooling pulse length (TFP/TFC) is approximately 1.25 as with the case of the recording code 5T. Moreover, the ratio of the first cooling pulse length to the intermediate cooling pulse length (TFC/TMC) is 1.2.
  • For the recording codes [0025] 7T to 11T, the recording waveforms are ones that a combination of the intermediate pulse length TMP=0.375T and the intermediate cooling pulse length TMC=0.625T is added to the intermediate part of the recording waveform for the recording code 6T, one by one, respectively.
  • By performing such recording waveform control as explained in the forgoing, a heat storage effect can be kept constant and the width of the mark can be controlled constant regardless of the length of a recording code. This control is extremely effective for the mark-length recording system where a mark smaller than a light spot size that is defined by λ/NA is used as a shortest mark. Further, also in the hindmost part of the mark, both a shape of the rear end of the mark formed in the recording medium and the thermal interference can be controlled by the [0026] fourth recording pulse 21, so that a mark whose recording code length is of the order of 0.15 to 0.20 μm can be recorded adequately.
  • Note that, although this embodiment adopts a configuration in which recording pulse trains corresponding to the nine kinds of recording code lengths of [0027] 3T to 11T are stored, the embodiment may adopt a configuration in which a recording pulse train corresponding to a recording code length of 2T is stored additionally according to the recording medium and the recording apparatus. Moreover, in this embodiment, the differences between the recording code lengths and the effective recording pulse lengths are set to 2.315T to 2.685T, but even if this difference is set to 2T or so, a similar effect can be obtained. Furthermore, the ratio of the first pulse length to the first cooling pulse length (TFP/TFC) is set to approximately 1.25, but even if this ratio is set to 2 or so, a similar effect can be obtained.
  • According to the present invention, in the mark-length recording system where a mark smaller than a light spot size that is defined by λ/NA is used as a shortest mark, there can be offered the effect that the length and width of the record mark are controlled in a highly accurate manner regardless of variation in lengths of the record marks and spaces, which enables the information to be recorded densely, and the effect that the reliability of the information is improved. [0028]

Claims (12)

What is claimed is:
1. An optical disk recording method for recording data by irradiating laser light and forming a mark whose length is an integral multiple of a reference clock length,
wherein, as irradiation powers, the laser can irradiate the optical disk at any one of four laser powers that satisfy a relation:
first power>second power>third power>fourth power,
 and
a sum of the lengths of a pulse of the first power and of a pulse of the fourth power at the time of forming the mark is specified to smaller than the length of the mark minus twice the reference clock length.
2. An optical disk recording method for recording data by irradiating laser light and forming a mark whose length is an integral multiple of a reference clock length,
wherein, as irradiation powers, the laser can irradiate the optical disk at any one of four laser powers that satisfy a relation:
first power>second power>third power>fourth power,
 and
the length of a first pulse of the first power is shorter than twice the length of a pulse of the fourth power that follows the first pulse of the first power.
3. An optical disk recording method for recording data by irradiating laser light and forming a mark whose length is an integral multiple of a reference clock length,
wherein, as irradiation powers, the laser can irradiate the optical disk at any one of four laser powers that satisfy a relation:
first power>second power>third power>fourth power,
the length of a first pulse of the fourth power at the time of forming the mark is longer than the length of a pulse of the fourth power that follows the first pulse of the fourth power.
4. An information recording apparatus for recording information by irradiating laser light on an optical disk and forming a mark whose length is an integral multiple of a reference clock length,
the information recording apparatus comprising:
laser irradiating means for irradiating laser light on the optical disk at any one of four laser powers that satisfy a relation,
first power>second power>third power>fourth power;
 and
controlling means for controlling the laser irradiating means so that a sum of the lengths of a pulse of the first power and of a pulse of the fourth power is shorter than the length of the mark minus twice the reference clock length.
5. An information recording apparatus for recording information by irradiating laser light on an optical disk and forming a mark whose length is an integral multiple of a reference clock length,
the information recording apparatus comprising: laser irradiating means for irradiating laser light on the optical disk at any of four laser powers that satisfy a relation:
first power>second power>third power>fourth power;
 and
controlling means for controlling the laser irradiating means so that the length of a first pulse of the first power is shorter than the length of a pulse of the fourth power that follows the first pulse of the first power.
6. An information recording apparatus for recording information by irradiating laser light on an optical disk and forming a mark whose length is an integral multiple of a reference clock length,
the information recording apparatus comprising:
laser irradiating means for irradiating laser light on the optical disk at any one of four laser powers that satisfy a relation,
first power>second power>third power>fourth power;
 and
controlling means for controlling the laser irradiating means so that the length of a first pulse of the fourth power is longer than the length of a pulse of the fourth power that follows the first pulse of the fourth power.
7. A method for recording information that is based on a mark-length recording system where oscillated laser light is irradiated on an information recording medium, a recorded portion physically different from an information-unrecorded portion is formed in a recording area on the information recording medium, the recorded portion and either of the unrecorded portion or an erased portion are changed in length, whereby the information is recorded and that can perform recording, reproducing, and erasing of information on the information recording medium or can perform direct recording of different information in an already recorded region in an overwriting manner,
wherein the recording waveform satisfies a relation:
(effective recording pulse length)<(recording code length)−2T
 where 2T is twice the reference clock cycle.
8. A method for recording information that is based on a mark-length recording system where oscillated laser light is irradiated on an information recording medium, a recorded portion physically different from an information-unrecorded portion is formed in the recording area on the information recording medium, the recorded portion and either of the unrecorded portion or an erased portion are changed in length, whereby the information is recorded and that can perform recording, reproducing, and erasing of information on the information recording medium or can perform direct recording of different information in an already recorded region in an overwriting manner,
the method for recording information comprising a step of using a recording waveform that is used for forming the record mark and is composed of broadly three pulses: a first pulse, intermediate pulse(s), and a last pulse or is composed of broadly two pulses: the first pulse and the last pulse, and the recording waveform satisfies a relation:
the length of the first pulse<the length of a first cooling pulse.
9. A recording apparatus that is based on a mark-length recording system where oscillated laser light is irradiated on an information recording medium, a recorded portion physically different from an information-unrecorded portion is formed in the recording area on the information recording medium, and the recorded portion and either of the unrecorded portion or an erased portion are changed in length, whereby the information is recorded and that can perform recording, reproducing, and erasing of information on the information recording medium or can perform direct recording of different information in an already recorded region in an overwriting manner,
wherein the method for recording information comprises a step of using a recording waveform that is used for forming a record mark and is composed of broadly three pulses: a first pulse, intermediate pulse(s), and a last pulse, and the recording waveform satisfies a relation:
the length of a first cooling pulse>the length of an intermediate cooling pulse.
10. A recording apparatus that is based on a mark-length recording system where a recorded portion physically different from an information-unrecorded portion is formed in the recording area on the information recording medium, and the recorded portion and either of the unrecorded portion or an erased portion are changed in length, whereby the information is recorded and that can perform recording, reproducing, and erasing of information on the information recording medium or can perform direct recording of different information in an already recorded region,
wherein the recording waveform satisfies a relation:
(effective recording pulse length)<(recording code length)−2T
where 2T is twice the reference clock cycle.
11. A recording apparatus that is capable of performing recording, reproducing, and erasing of information on the information recording medium or capable of performing direct recording of different information in an already recorded region by a mark-length recording system where a recorded portion physically different from an information-unrecorded portion is formed in a recording area on the information recording medium and the recorded portion and either of the unrecorded portion or an erased portion are changed in length, whereby the information is recorded,
wherein the recording apparatus has a recording waveform that is used for forming a record mark and is composed of broadly three pulses: a first pulse, intermediate pulse(s), and a last pulse, or is composed of broadly two pulses: the first pulse and the last pulse, and the recording waveform satisfies a relation:
(the length of the first pulse)<(the length of a first cooling pulse)×2.
12. A recording apparatus that is capable of performing recording, reproducing, and erasing of information on the information recording medium or capable of performing direct recording of different information in an already recorded region by a mark-length recording system where a recorded portion physically different from an information-unrecorded portion is formed in a record area on the information recording medium and the recorded portion and either of the unrecorded portion or an erased portion are changed in length, whereby the information is recorded,
wherein the recording apparatus has a recording waveform that is used for forming a record mark and is composed of broadly three pulses: a first pulse, intermediate pulse(s), and a last pulse, and the recording waveform satisfies a relation:
(the length of a first cooling pulse)>(the length of an intermediate cooling pulse).
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Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050063272A1 (en) * 2003-08-27 2005-03-24 Tdk Corporation Method for recording data in an optical recording disc and an apparatus for recording data in an optical recording disc
US20050213465A1 (en) * 2004-03-18 2005-09-29 Kohji Takeuchi Method of writing multi-level data using adjusted recording waveform
US20050243677A1 (en) * 2004-02-12 2005-11-03 Tdk Corporation Method for recording information on optical recording medium and information recording apparatus
US20060013111A1 (en) * 2002-11-19 2006-01-19 Tdk Corporation Method for recording data onto optical recording medium, data recording device, and optical recording medium
US20060039261A1 (en) * 2002-09-09 2006-02-23 Tdk Corporation Method for recording data on optical recording medium, device for recording data on optical recording medium, and optical recording medium

Families Citing this family (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7479363B2 (en) 2002-04-26 2009-01-20 Tdk Corporation Optical recording medium and method for optically recording data in the same
JP4282285B2 (en) * 2002-08-12 2009-06-17 Tdk株式会社 Optical recording medium and optical recording method
TW200509104A (en) * 2003-05-23 2005-03-01 Matsushita Electric Industrial Co Ltd Information recording medium; recording device, method and program thereof
JP2005071516A (en) * 2003-08-27 2005-03-17 Tdk Corp Data recording method for optical recording disk, and data recording apparatus for optical recording disk
CN100416668C (en) * 2004-06-28 2008-09-03 Tdk股份有限公司 Information recording method and optical recording device for optical recording medium
CN101884066B (en) * 2009-02-18 2013-01-02 联发科技股份有限公司 Signal generation method

Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5490126A (en) * 1993-04-07 1996-02-06 Matsushita Electric Industrial Co., Ltd. Apparatus for recording and reproducing data on a disk
US5590111A (en) * 1990-06-29 1996-12-31 Hitachi, Ltd. Method of controlling recording of optical records
US5818808A (en) * 1995-03-31 1998-10-06 Mitsubishi Chemical Corporation Optical recording process and optical recording system
US5905695A (en) * 1995-08-30 1999-05-18 Canon Kabushiki Kaisha Optical information recording/reproducing apparatus and method capable of selecting recording waveform in correspondence with characteristics of medium
US6169722B1 (en) * 1998-12-09 2001-01-02 Tdk Corporation Phase change type optical recording medium having minute length recorded marks
US6236635B1 (en) * 1997-09-09 2001-05-22 Hitachi, Ltd. Information recording method and apparatus with suppressed mark edge jitters
US6411579B2 (en) * 1999-05-19 2002-06-25 Mitsubishi Chemical Corporation Optical recording method and optical recording medium
US6567367B2 (en) * 1998-10-26 2003-05-20 Mitsubishi Chemical Corporation Multilevel recording and reproduction method and phase change multilevel recording medium

Family Cites Families (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP3124720B2 (en) * 1995-04-14 2001-01-15 株式会社リコー Information recording / reproducing method, information recording / reproducing device, and information recording medium
JP2684952B2 (en) 1993-04-07 1997-12-03 松下電器産業株式会社 Disc recording method and disc recording apparatus
JP2679596B2 (en) 1993-11-09 1997-11-19 松下電器産業株式会社 Disc recording method and disc recording apparatus
JP2982556B2 (en) * 1993-05-06 1999-11-22 ヤマハ株式会社 Optical disk recording device
JP3284252B2 (en) * 1993-12-17 2002-05-20 松下電器産業株式会社 Optical information recording method and recording apparatus
JP3081551B2 (en) * 1995-04-14 2000-08-28 株式会社リコー Information recording and playback method
JPH09134525A (en) * 1995-11-08 1997-05-20 Ricoh Co Ltd Information recording method
JP3608926B2 (en) 1996-12-26 2005-01-12 株式会社日立製作所 Information recording device
EP0895634B1 (en) 1997-02-14 2005-02-16 Koninklijke Philips Electronics N.V. Method and device for writing an optical record carrier
JPH11345428A (en) * 1998-06-01 1999-12-14 Hitachi Ltd Information recording method and information recording device
JP2000099950A (en) * 1998-09-18 2000-04-07 Hitachi Ltd Information recording method and information recording device
JP2000163748A (en) * 1998-11-26 2000-06-16 Toshiba Corp Information recording method and information recording / reproducing device
TW561463B (en) * 1999-03-30 2003-11-11 Koninkl Philips Electronics Nv Method and device for recording marks in an information layer of an optical record carrier
JP3632831B2 (en) * 1999-04-26 2005-03-23 シャープ株式会社 Optical recording apparatus, optical reproducing apparatus, and optical recording medium
KR100322601B1 (en) * 1999-06-18 2002-03-18 윤종용 Recording method for optical disk recording, control method for optical disk recording apparatus, and recording apparatus of optical disk
CN1378686A (en) * 1999-10-14 2002-11-06 Tdk股份有限公司 Optical recording medium, optical recording method, and optical readout method
JP3839213B2 (en) * 2000-02-08 2006-11-01 株式会社リコー Recording method and recording / reproducing apparatus for phase change optical recording medium
JP3969958B2 (en) * 2001-02-14 2007-09-05 株式会社リコー Optical information recording method
JP2002245624A (en) * 2001-02-14 2002-08-30 Tdk Corp Optical recording method, optical recorder and optical recording medium
JP4491985B2 (en) * 2001-03-28 2010-06-30 Tdk株式会社 Optical recording method
JP2003109218A (en) * 2001-09-28 2003-04-11 Hitachi Maxell Ltd Information recording medium recording method and recording apparatus

Patent Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5590111A (en) * 1990-06-29 1996-12-31 Hitachi, Ltd. Method of controlling recording of optical records
US5490126A (en) * 1993-04-07 1996-02-06 Matsushita Electric Industrial Co., Ltd. Apparatus for recording and reproducing data on a disk
US5636194A (en) * 1993-04-07 1997-06-03 Matsushita Electric Industrial Co., Ltd. Method of recording and reproducing data on a disk
US5818808A (en) * 1995-03-31 1998-10-06 Mitsubishi Chemical Corporation Optical recording process and optical recording system
US5905695A (en) * 1995-08-30 1999-05-18 Canon Kabushiki Kaisha Optical information recording/reproducing apparatus and method capable of selecting recording waveform in correspondence with characteristics of medium
US6236635B1 (en) * 1997-09-09 2001-05-22 Hitachi, Ltd. Information recording method and apparatus with suppressed mark edge jitters
US6567367B2 (en) * 1998-10-26 2003-05-20 Mitsubishi Chemical Corporation Multilevel recording and reproduction method and phase change multilevel recording medium
US6169722B1 (en) * 1998-12-09 2001-01-02 Tdk Corporation Phase change type optical recording medium having minute length recorded marks
US6411579B2 (en) * 1999-05-19 2002-06-25 Mitsubishi Chemical Corporation Optical recording method and optical recording medium

Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20060039261A1 (en) * 2002-09-09 2006-02-23 Tdk Corporation Method for recording data on optical recording medium, device for recording data on optical recording medium, and optical recording medium
US7193949B2 (en) * 2002-09-09 2007-03-20 Tdk Corporation Method for recording data on optical recording medium, device for recording data on optical recording medium, and optical recording medium
US20060013111A1 (en) * 2002-11-19 2006-01-19 Tdk Corporation Method for recording data onto optical recording medium, data recording device, and optical recording medium
US7345976B2 (en) 2002-11-19 2008-03-18 Tdk Corporation Method for recording data in optical recording medium, apparatus for recording data in optical recording medium and optical recording medium
US20050063272A1 (en) * 2003-08-27 2005-03-24 Tdk Corporation Method for recording data in an optical recording disc and an apparatus for recording data in an optical recording disc
US20050243677A1 (en) * 2004-02-12 2005-11-03 Tdk Corporation Method for recording information on optical recording medium and information recording apparatus
US7502295B2 (en) * 2004-02-12 2009-03-10 Tdk Corporation Method for recording information on optical recording medium and information recording apparatus
US20050213465A1 (en) * 2004-03-18 2005-09-29 Kohji Takeuchi Method of writing multi-level data using adjusted recording waveform
US7688695B2 (en) * 2004-03-18 2010-03-30 Ricoh Company, Ltd. Method of writing multi-level data using adjusted recording waveform

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